Hadis Zarrin
University of Waterloo
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Publication
Featured researches published by Hadis Zarrin.
Energy and Environmental Science | 2016
Jing Fu; Jing Zhang; Xueping Song; Hadis Zarrin; Xiaofei Tian; Jinli Qiao; Lathanken Rasen; Kecheng Li; Zhongwei Chen
Rechargeable zinc–air batteries, having high energy densities and cost-effectiveness, are important environmentally-benign energy storage solutions. Here we developed a facile strategy for fabricating a nanoporous alkaline-exchange electrolyte membrane from natural cellulose nanofibres, exhibiting high ionic-conductivity and water retention as well as high bending flexibility. These advantages render the membrane a promising solid-state electrolyte for rechargeable zinc–air batteries in lightweight and flexible electronic applications.
ACS Nano | 2015
Hadis Zarrin; Jing Fu; Gaopeng Jiang; Skylar Yoo; Jared Lenos; Michael B. Fowler; Zhongwei Chen
Nanocomposites play a key role in performance improvements of hydroxide conductors employed in a wide range of alkaline-electrochemical systems such as fuel cells and metal-air batteries. Graphene oxide (GO) nanosheets are considered to be outstanding nanofillers for polymeric nanocomposites on account of their excellent physicochemical strength and electrochemical properties. In this work, a fast hydroxide conductor was developed on the basis of a chemically modified GO nanocomposite membrane. The high surface area of GO was functionalized with highly stable hydroxide-conductive groups using a dimethyloctadecyl [3-(trimethoxysilyl)propyl]ammonium chloride (DMAOP) precursor, named QAFGO, and then composed with porous polybenzimidazole PBI (pPBI) as a well-suited polymeric backbone. The nanocomposite exhibited outstanding hydroxide conductivity of 0.085 S cm(-1), high physicochemical strength, and electrochemical stability for 21 days. An alkaline fuel cell (AFC) setup was fabricated to determine the functionality of QAFGO/pPBI nanocomposite in an alkaline-based system. The high AFC performance with peak power density of 86.68 mW cm(-2) demonstrated that QAFGO/pPBI nanocomposite membrane has promising potential to be employed as a reliable hydroxide conductor for electrochemical systems working in alkaline conditions.
ACS Applied Materials & Interfaces | 2016
Hadis Zarrin; Serubbabel Sy; Jing Fu; Gaopeng Jiang; Keunwoo Kang; Yun-Seok Jun; Aiping Yu; Michael Fowler; Zhongwei Chen
Acquiring reliable and efficient wearable electronics requires the development of flexible electrolyte membranes (EMs) for energy storage systems with high performance and minimum dependency on the operating conditions. Herein, a freestanding graphene oxide (GO) EM is functionalized with 1-hexyl-3-methylimidazolium chloride (HMIM) molecules via both covalent and noncovalent bonds induced by esterification reactions and electrostatic πcation-π stacking, respectively. Compared to the commercial polymeric membrane, the thin HMIM/GO membrane demonstrates not only slightest performance sensitivity to the operating conditions but also a superior hydroxide conductivity of 0.064 ± 0.0021 S cm(-1) at 30% RH and room temperature, which was 3.8 times higher than that of the commercial membrane at the same conditions. To study the practical application of the HMIM/GO membranes in wearable electronics, a fully solid-state, thin, flexible zinc-air battery and supercapacitor are made exhibiting high battery performance and capacitance at low humidified and room temperature environment, respectively, favored by the bonded HMIM molecules on the surface of GO nanosheets. The results of this study disclose the strong potential of manipulating the chemical structure of GO to work as a lightweight membrane in wearable energy storage devices, possessing highly stable performance at different operating conditions, especially at low relative humidity and room temperature.
Journal of Physical Chemistry C | 2011
Hadis Zarrin; Drew Higgins; Yu Jun; Zhongwei Chen; Michael Fowler
Journal of Membrane Science | 2012
Hadis Zarrin; Jason Wu; Michael Fowler; Zhongwei Chen
International Journal of Hydrogen Energy | 2011
Yu Jun; Hadis Zarrin; Michael Fowler; Zhongwei Chen
Carbon | 2015
Yun-Seok Jun; Serubbabel Sy; Wook Ahn; Hadis Zarrin; Lathankan Rasen; Ricky Tjandra; Behnam Meschi Amoli; Boxin Zhao; Gordon Chiu; Aiping Yu
Advanced Energy Materials | 2016
Jing Zhang; Jing Fu; Xueping Song; Gaopeng Jiang; Hadis Zarrin; Pan Xu; Kecheng Li; Aiping Yu; Zhongwei Chen
Advanced Functional Materials | 2016
Gaopeng Jiang; Maciej Goledzinowski; Felix J. E. Comeau; Hadis Zarrin; Gregory Lui; Jared Lenos; Alicia Veileux; Guihua Liu; Jing Zhang; Sahar Hemmati; Jinli Qiao; Zhongwei Chen
Journal of Power Sources | 2015
Gaopeng Jiang; Jing Zhang; Jinli Qiao; Yongming Jiang; Hadis Zarrin; Zhongwei Chen; Feng Hong